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Depolarization of trigeminal afferents induced by stimulation of brain-stem and peripheral nerves

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Summary

  1. 1.

    In nembutalized cats the excitability of supraorbital (SO) and infraorbital (IO) primary afferents was tested by microelectrode stimulation within the trigeminal nuclei. SO excitability increased after conditioning stimulation of IO nerve, brain-stem throughout its extent and ipsi- and contralateral fore- and hindlimb nerves. The conditioning curves did not change in decerebrate preparations.

  2. 2.

    In decerebrate cats a negative slow potential (trigeminal dorsal root potential, TDRP) was recorded from the isolated sensory trigeminal root following stimulation of contralateral SO nerve, homolateral common radial trunk and brain-stem.

  3. 3.

    In nembutalized as in decerebrate cats, a single IO impulse induced in the trigeminal complex a focal synaptic potential (N1-N2-waves) followed by a prolonged (200 msec) slow potential (P-wave). P-waves were also produced by high frequency stimulation of the brain-stem reticular regions. They were positive laterally to the trigeminal nucleus and inverted along a line between nucleus and tract. The N-wave had maximal amplitude in the trigeminal nucleus and became positive at the level of its medial boundary.

  4. 4.

    Unit discharges in the trigeminal nucleus responding to IO volley and lemniscal potentials evoked by the same stimulus were depressed by reticular activation following a time course of over 100 msec.

  5. 5.

    The results suggest a process of primary afferent depolarization (PAD), of trigeminal fibers induced by stimulations of brain-stem, fore- and hind-limbs nerves and other trigeminal afferents in absence of forebrain and cortical structures.

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References

  • Andersen, P., J.C. Eccles, T. Oshima and R.F. Schmidt: Mechanisms of synaptic transmission in the cuneate nucleus. J. Neurophysiol. 27, 1096–1116 (1964).

    Google Scholar 

  • —, R.F. Schmidt and T. Yokota: Slow potential waves produced in the cuneate nucleus by cutaneous volleys and by cortical stimulation. J. Neurophysiol. 27, 78–91 (1964a).

    Google Scholar 

  • — and T. Yokota: Depolarization of presynaptic fibers in the cuneate nucleus. J. Neurophysiol. 27, 92–106 (1964b).

    Google Scholar 

  • Angel, A., F. Magni and P. Strata: Excitability of intra-geniculate optic tract fibres after reticular stimulation in the midpontine pretrigeminal cat. Arch. ital. Biol. 103, 668–693 (1965).

    Google Scholar 

  • Baldissera, F., G. Broggi and M. Mancia: Presynaptic inhibition of trigeminal afferent fibres during the rapid eye movements of desynchronized sleep. Experientia (Basel) 22, 754–755 (1966a).

    Google Scholar 

  • —: Primary afferent depolarization (PAD) of trigeminal fibers induced by stimulation of brain-stem and peripheral nerves. Experientia (Basel) 23, 398–400 (1967a).

    Google Scholar 

  • - - - Depolarizzazione delle fibre afferenti del trigemino indotta da stimolazione del tronco del'encefalo e di nervi periferici. Boll. Soc. ital. Biol. sper. 43 (1967b) (in press).

  • — e A. Rustioni: Vie discendenti responsabili della attività lenta del midollo spinale durante il sonno desincronizzato. Boll. Soc. ital. Biol. sper. 42, 1826–1827 (1966b).

    Google Scholar 

  • —, M.G. Cesa-Bianchi and M. Mancia: Phasic events indicating presynaptic inhibition of primary afferents to the spinal cord during desynchronized sleep. J. Neurophysiol. 29, 871–887 (1966c).

    Google Scholar 

  • Barron, D.H., and B.H.C. Matthews: The interpretation of potential changes in the spinal cord. J. Physiol. (Lond.) 92, 276–321 (1938).

    Google Scholar 

  • Carpenter, D., I. Engberg and A. Lundberg: Presynaptic inhibition in the lumbar cord evoked from the brain stem. Experientia (Basel) 18, 450–451 (1962).

    Google Scholar 

  • —: Primary afferent depolarization evoked from the brain-stem and the cerebellum. Arch. ital. Biol. 104, 73–85 (1966).

    Google Scholar 

  • Cesa-Bianchi, M.G., e M.L. Sotgiu: Depolarizzazione delle fibre afferenti al nucleo cuneato indotta dalla stimolazione del tronco dell'encefalo. Boll. Soc. ital. Biol. sper. 43 (1967) (in press).

  • Darian-Smith, I.: Presynaptic component in the afferent inhibition observed within trigeminal brain-stem nuclei of the cat. J. Neurophysiol. 28, 695–709 (1965).

    Google Scholar 

  • —, and T. Yokota: Cortically evoked depolarization of trigeminal cutaneous afferent fibers in the cat. J. Neurophysiol. 29, 170–184 (1966).

    Google Scholar 

  • Eccles, J.C.: The physiology of synapses. XI-316 pp. Berlin-Göttingen-Heidelberg: Springer 1964.

    Google Scholar 

  • —: Presynaptic inhibition in the spinal cord. In: Physiology of spinal neurons, Progress in Brain Research, vol. 12, pp. 65–91. Amsterdam: Elsevier 1964b.

    Google Scholar 

  • —, R.M. Eccles and F. Magni: Central inhibitory action attributable to presynaptic depolarization produced by muscle afferent volleys. J. Physiol. (Lond.) 159, 147–166 (1961).

    Google Scholar 

  • —, P.G. Kostyuk and R.F. Schmidt: Central pathways responsible for depolarization of primary afferent fibers. J. Physiol. (Lond.) 161, 237–257 (1962).

    Google Scholar 

  • —, F. Magni and W.D. Willis: Depolarization of central terminals of group I afferent fibres from muscle. J. Physiol. (Lond.) 160, 62–93 (1962).

    Google Scholar 

  • Eisenmann, J., S. Landgren and D. Novin: Functional organization in the main sensory trigeminal nucleus and in the rostral subdivision of the nucleus of spinal trigeminal tract in the cat. Acta physiol. scand. 59, Suppl. 214, 1–44 (1963).

    Google Scholar 

  • Gasser, H.S., and H.T. Graham: Potential produced in spinal cord by stimulation of the dorsal roots. Amer. J. Physiol. 103, 303–320 (1963).

    Google Scholar 

  • Hammer, B., R. Tarnecki, L. Vyklicky and M. Wiesendanger: Corticofugal control of presynaptic inhibition in the spinal trigeminal complex of the cat. Brain Res. 2, 216–218 (1966).

    Google Scholar 

  • King, R.B., and J.N. Meagher: Studies of trigeminal nerve potentials. J. Neurosurg. 12, 393–402 (1955).

    Google Scholar 

  • Jouvet, M.: Recherches sur les structures nerveuses et les mecanismes responsables des differents phases du sommeil physiologique. Arch. ital. Biol. 100, 125–206 (1962).

    Google Scholar 

  • Magoun, H.W., and R. Rhines: An inhibitory mechanism in the bulbar reticular formation. J. Neurophysiol. 9, 165–171 (1946).

    Google Scholar 

  • Moruzzi, G.: Active processes in the brain-stem during sleep. Harvey Lect., Series 58, 233 to 297 (1963).

    Google Scholar 

  • Pompeiano, O., and J.E. Swett: Identification of cutaneous and muscular afferent fibers producing EEG synchronization or arousal in normal cats. Arch. ital. Biol. 100, 343–380 (1962).

    Google Scholar 

  • Pollock, L.J., and L. Davis: Studies in decerebration. I. A method of decerebration. Arch. Neurol. Psychiat. 10, 391–398 (1923).

    Google Scholar 

  • Rossi, G.F., and A. Zanchetti: The brain-stem reticular formation. Anatomy and physiology. Arch. ital. Biol. 95, 199–435 (1957).

    Google Scholar 

  • Stewart, D.H., and R.B. King: Effect of conditioning stimuli upon evoked potentials in the trigeminal complex. J. Neurophysiol. 29, 443–455 (1966).

    Google Scholar 

  • Wall, P.D.: Excitability changes in afferent fibre terminations and their relation to slow potentials. J. Physiol. (Lond.) 142, 1–21 (1958).

    Google Scholar 

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Baldissera, F., Broggi, G. & Mancia, M. Depolarization of trigeminal afferents induced by stimulation of brain-stem and peripheral nerves. Exp Brain Res 4, 1–17 (1967). https://doi.org/10.1007/BF00235213

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  • DOI: https://doi.org/10.1007/BF00235213

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